A stored light intensity measurement device capable of measuring an afterglow intensity from a light storing sign in a simple way, even if the light storing sign is provided on walls or risers of stairs in facilities or underground shopping mall. The stored light intensity measurement device comprising the light measuring unit configured o measure afterglow from a part of a light storing section on a light storing sign, and calculation means for calculating an afterglow intensity from the light storing sign based on the measured results.
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1. A stored light intensity measurement device comprising:
a light measurement unit configured to measure afterglow from a part of a light storing section on a light storing sign; and
calculation means for obtaining an approximate expression,
L:intensity, and t:time
based on the afterglow intensity measured from a first time t1 to a second time t2 after a beginning of the light interception, and predicting the afterglow intensity at an arbitrary time t3 after the beginning of the light interception using the approximate expression,
wherein the time t1, t2, and t3 are t1<t2<t3, and a display means is used to display the afterglow intensity.
2. A stored light intensity measurement device according to
3. A stored light intensity measurement device according to
the light measurement unit provided with an approaching surface smaller than a light storing section of the light storing sign,
a light receiver configured to receive light incident through a guard window of the light measurement unit; and
a light intercepting elastic body provided to the approaching surface so as to intercept light incident from the outside of a measuring area of the light storing sign by having intimate contact with the light storing sign,
wherein the calculation means calculates the afterglow intensity from the light storing sign base on the measured afterglow intensity when the light intercepting elastic body has intimate contact with the light storing sign.
4. A stored light intensity measurement device according to
a shaft having a grip; and
a universal join provided on an opposite end to the grip of the shaft to connect the light measurement unit.
5. A stored light intensity measurement device according to
6. A stored light intensity measurement device according to
7. A stored light intensity measurement device according to
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The present application claims the benefit of Japanese patent application number 2005-367685, filed in Japan on Dec. 21, 2005, the subject matter of which is hereby incorporated herein by reference.
(1) Field of the Invention
The present invention relates to a stored light intensity measurement device for measuring afterglow intensity of a light storing sign.
(2) Description of the Related art
When the earthquake or the like causes a power failure at night, a self-generation of electricity type or battery-powered type pilot display light is to light in an underground passage, in a passage in a building, or in the subway yard. However, there are occurrences when the self-generation of electricity does not always work at the earthquake, and the battery-powered pilot display light does not light at the emergency due to failing the maintenance of the battery of the pilot display light.
Therefore, Japanese government promotes an installation of light storing signs, which keep the luminescence in a specific period after the power failure without supplying energy from outside, on a wall and a riser of stairs in the above-mentioned sites. The light storing sign is a sign board made up of synthetic resin, ceramic, or glass, and of which surface is processed by the light storing material and is given a safety sign design with coloring materials.
The light storing material can absorb light such as sunlight or fluorescent light, and store the energy, and release the stored energy as visible light. The light storing sign using the light storing material is visible due to its phosphorescence in dark environment, and it is also visible even when ambient darkness occurs due to the power failure.
The phosphorescence of the light storing sign fades away and becomes invisible with the lapse of time. Recently, in case of strontium aluminate or calcium aluminate that are used as the light storing material, the visible state will last for approximate 10 hours in total darkness. In case of zinc sulfide, the visible state will last only for a few hours.
In order that the sign is useful in darkness, the sign should have necessary luminance after a predetermined time lapsed. Japanese Industrial Standards Z9107 regulates the light storing sign for communicating or displaying for caution, indication or information for evacuation. That is to say, the luminance of the phosphorescence requires 24 mcd/m2 and more after 20 minutes from the light interception.
In order to measure the afterglow intensity of the light storing sign, the luminance meter like the spot-meter is useful, as disclosed in Japanese Patent Unexamined-Publication No. 07-011250A. For instance, the light storing sign is placed in total darkness for hours before the measurement is performed, and then a predetermined illuminance light is irradiated thereon to store the energy of light. After that, the light storing sign is moved again in darkness, and the afterglow intensity of the light storing sign is measured by the luminance meter.
The above method is available for measuring the afterglow intensity from the storing sign before the sign is installed. However, it is difficult to measure the afterglow intensity after the sign is installed. The sign is placed in the facility or underground shopping mall mostly, and in order to measure the afterglow intensity in such case, the facility or underground must be unilluminated.
The present invention is suggested in view of the above-mentioned subject in the prior art, and has an object to provide an stored light intensity measurement device capable of easily measuring the afterglow intensity from the light storing sign regardless of the environment on which the light storing sign is placed.
In order to achieve the above object, the present invention provides a stored light intensity measurement device comprising: a light measurement unit configured to measure afterglow from a part of light stored section on a light storing sign; and calculation means for calculating an afterglow intensity from the light storing sign based on the measured results.
In accordance with a preferred embodiment, the calculation means calculates the afterglow intensity after a predetermined time lapsed from beginning light interception based on reciprocals of the afterglow intensity measured for a period in the predetermined time lapsed. In employing such configuration, the stored light intensity measurement device can measure the stored light intensity in a short time, and makes it possible to facilitate the maintenance of the light storing sign.
The present invention is illustrated by way of example, and not by way of limitation, in the figures of the accompanying drawings and in which like reference numerals refer to similar elements and in which:
The embodiments of the present invention are discussed hereinafter in accordance with attached drawings. In the embodiments, the present invention is embodied as a stored light intensity measurement device for measuring the afterglow intensity of light storing signs.
Light storing sign samples used in this embodiment are six (A-1, A-2, A-3, A-4, B-1, and C-1), and
L20=−a log et+b (a: coefficient, b: constant) (1)
However, when various light storing materials are applied on the light storing sign used in the embodiment (that is to say, the materials are applied thinly over the plate), it is possible to understand from
TABLE 1
Predicted intensity of light-energy storing samples after 20 min.
from light interception, calculated using exponential function
Result Predicted from intensity of samples measured
from 3 min. to 5 min. after light interception
Proportion of
Actual measured
Predicted
predicted intensity
intensity after 20 min.
intensity after 20 min.
to measured
from light
from light
intensity after 20 min.
interception
interception
from light
Sample
[mcd/m2]
[mcd/m2]
interception [%]
Resin sample A-1
243.0
59.3
−75.6
Resin sample A-2
215.0
49.1
−77.2
Resin sample A-3
180.0
66.5
−63.1
Resin sample A-4
156.0
29.5
−81.1
Resin sample B-1
107.0
19.0
−82.2
Ceramic sample C-1
197.0
87.0
−55.8
Average (Ave.)
−72.5
Standard deviation (S.D.)
9.7
When the predicted afterglow intensity after 20 minutes from the light interception is calculated by the above linear approximate equation based on the actual measured values from 3 minutes to 5 minutes after the light interception, Table 2 represents the actual measured intensity values, the predicted afterglow intensity values, and the deviation proportion (%) of both values. Since there is the time that cannot be approximated by the straight line just after the light interception, the data measured for 3 minutes just after the light interception is excluded. In result, there is a very little error between the calculated afterglow intensity after 20 minutes from the light interception and the actual measured intensity (−0.9% to +3.4%).
TABLE 2
Predicted intensity of light-energy storing sign samples after 20 min.
from light interception, calculated using the reciprocal of measured intensity
Result predicted from intensity of samples measured
from 3 min. to 5 min. after light interception
Proportion of
Predicted
predicted
Actual measured
intensity after
intensity to
intensity after 20 min.
20 min. from
measured
from light
light
intensity after 20 min.
interception
interception
from light
Sample
[mcd/m2]
[mcd/m2]
interception [%]
Resin sample A-1
243.0
240.7
−0.9
Resin sample A-2
215.0
216.9
0.9
Resin sample A-3
180.0
186.3
3.5
Resin sample A-4
156.0
158.2
1.4
Resin sample B-1
107.0
111.1
3.8
Ceramic sample C-1
197.0
203.7
3.4
Average (Ave.)
2.0
Standard deviation (S.D.)
1.7
When the sampling time varies, Table 3 represents the actual measured value after 20 minutes from the light interception, the deviation between the actual measured value and the predicted value, and the deviation percentage of both values. There are 6 cases of the sampling times between ‘a sampling time from 2 minutes to 3 minutes after the light interception’ and ‘a sampling time from 3 minutes to 5 minutes after the light interception’. The deviation percentage of both values ranges within plus or minus several percentages. It proves no problem in practical use.
TABLE 3
Predicted intensity of light-energy storing sign samples after 20 min. from light interception, calculated using the
reciprocal of measured intensity (calculation based on data at arbitrary time from 2 min. to 5 min. after light interception)
Sample
Resin sample A-1
Resin sample A-2
Resin sample A-3
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
Measured
243
215
180
intensity
Predicted
232.4
−10.6
−4.4
210.1
−4.9
−2.3
182.7
2.7
1.5
intensity 1
Predicted
234.5
−8.5
−3.5
213.2
−1.8
−0.8
184.1
4.1
2.3
intensity 2
Predicted
235.9
−7.1
−2.9
213.6
−1.4
−0.7
185.2
5.2
2.9
intensity 3
Predicted
237.7
−5.3
−2.2
215
0.0
0.0
185.5
5.5
3.1
intensity 4
Predicted
240.4
−2.6
−1.1
216.7
1.7
0.8
187.5
7.5
4.2
intensity 5
Predicted
240.7
−2.3
−0.9
216.9
1.9
0.9
186.3
6.3
3.5
intensity 6
Sample
Resin sample A-4
Resin sample B-1
Ceramic sample C-1
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
Measured
156
107
197
intensity
Predicted
155.6
−0.4
−0.3
110.3
3.3
3.1
197.9
0.9
0.5
intensity 1
Predicted
155.9
−0.1
−0.1
110.4
3.4
3.2
199.9
2.9
1.5
intensity 2
Predicted
157.1
1.1
0.7
110.4
3.4
3.2
201.3
4.3
2.2
intensity 3
Predicted
157.4
1.4
0.9
110.8
3.8
3.6
202.1
5.1
2.6
intensity 4
Predicted
159.1
3.1
2.0
110.6
3.6
3.4
205.3
8.3
4.2
intensity 5
Predicted
158.2
2.2
1.4
111.1
4.1
3.8
203.7
6.7
3.4
intensity 6
Deviation [mcd/m2]: Deviation between estimated intensity and measured intensity after 20 min. from light interception
Proportion[%]: Proportion of estimated intensity to measured intensity after 20 min. from light interception
Measured intensity: Afterglow intensity actually measured after 20 min. from light interception
Predicted intensity 1: Predicted intensity calculated based on data measured from 2 to 3 min.
Predicted intensity 2: Predicted intensity calculated based on data measured from 2 to 3.5 min.
Predicted intensity 3: Predicted intensity calculated based on data measured from 2 to 4 min.
Predicted intensity 4: Predicted intensity calculated based on data measured from 2 to 5 min.
Predicted intensity 5: Predicted intensity calculated based on data measured from 3 to 4 min.
Predicted intensity 6: Predicted intensity calculated based on data measured from 3 to 5 min.
Conditions:
(1) Light-energy storing condition: illuminance 200 lx for 1 hr.
(2) Calculation of estimated intensity using measurement data for every 30 sec.
Where the afterglow intensity of the sample A-1 is measured at different storing conditions of light energy, the measurement result is shown in
Table 4 represents calculation results when the predicted afterglow intensity after 20 minutes are calculated based on the actual measured values shown in
TABLE 4
Predicted intensity of light-energy storing sign samples A-1 after 20 min. from light interception, calculated using
exponential function, under different light-energy storing conditions (Calculation based on data at arbitrary time
from 2 min. to 5 min. after light interception)
Conditions
Illuminance 50 lx
Illuminance 80 lx
Illuminance 100 lx
for 20 min.
for 20 min.
for 20 min.
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
Measured
102
156
194
intensity
Predicted
21.3
−80.7
−79.1
20
−136.0
−87.2
21.7
−172.3
−88.8
intensity 1
Predicted
23
−79.0
−77.5
23.7
−132.3
−84.8
26
−168.0
−86.6
intensity 2
Predicted
25.1
−76.9
−75.4
38.5
−117.5
−75.3
29.5
−164.5
−84.8
intensity 3
Predicted
30.4
−71.6
−70.2
35
−121.0
−77.6
37.9
−156.1
−80.5
intensity 4
Predicted
30.3
−71.7
−70.3
38.5
−117.5
−75.3
40.8
−153.2
−79.0
intensity 5
Predicted
37.7
−64.3
−63.0
47.2
−108.8
−69.7
51.7
−142.3
−73.4
intensity 6
Conditions
Illuminance 100 lx
Illuminance 200 lx
Illuminance 1000 lx
for 1 hr.
for 1 hr.
for 1 hr.
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
Measured
218
243
283
intensity
Predicted
24.8
−193.2
−88.6
19.4
−223.6
−92.0
14.8
−268.2
−94.8
intensity 1
Predicted
29.8
−188.2
−86.3
24.4
−218.6
−90.0
19.3
−263.7
−93.2
intensity 2
Predicted
34.4
−183.6
−84.2
29.4
−213.6
−87.9
23.4
−259.6
−91.7
intensity 3
Predicted
44.7
−173.3
−79.5
39.5
−203.5
−83.7
33.3
−249.7
−88.2
intensity 4
Predicted
48.8
−169.2
−77.6
47.7
−195.3
−80.4
39
−244.0
−86.2
intensity 5
Predicted
61.8
−156.2
−71.7
59.3
−183.7
−75.6
53.6
−229.4
−81.1
intensity 6
Deviation [mcd/m2]: Deviation between predicted intensity and measured intensity after 20 min. from light interception
Proportion[%]: Proportion of predicted intensity to measured intensity after 20 min. from light interception
Measured intensity: Afterglow intensity actually measured after 20 min. from light interception
Predicted intensity 1: Predicted intensity calculated based on data measured from 2 to 3 min.
Predicted intensity 2: Predicted intensity calculated based on data measured from 2 to 3.5 min.
Predicted intensity 3: Predicted intensity calculated based on data measured from 2 to 4 min.
Predicted intensity 4: Predicted intensity calculated based on data measured from 2 to 5 min.
Predicted intensity 5: Predicted intensity calculated based on data measured from 3 to 4 min.
Predicted intensity 6: Predicted intensity calculated based on data measured from 3 to 5 min.
The predicted intensity was calculated using data measured for every 30 sec.
1. Afterglow intensity test for light-energy storing type pilot sign: illuminance 200 lx for 1 hr.
2. Illuminance in underground passage: 200 lx and more (under an ordinance of Tokyo Fire Defense Agency)
TABLE 5
Predicted intensity of light-energy storing sign samples A-1 after 20 min. from light interception, calculated using the
reciprocal of measured intensity, under different light-energy storing conditions (Calculation based on data at arbitrary
time from 2 min. to 5 min. after light interception)
Conditions
Illuminance 50 lx
Illuminance 80 lx
Illuminance 100 lx
for 20 min.
for 20 min.
for 20 min.
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
Measured
102
156
194
intensity
Predicted
96.7
−5.3
−5.2
152.7
−3.3
−2.1
193
−1.0
−0.5
intensity 1
Predicted
95.9
−6.1
−6.0
153.4
−2.6
−1.7
193.8
−0.2
−0.1
intensity 2
Predicted
96
−6.0
−5.9
154.1
−1.9
−1.2
193.2
−0.8
−0.4
intensity 3
Predicted
97.3
−4.7
−4.6
155.4
−0.6
−0.4
194.1
0.1
0.1
intensity 4
Predicted
95.5
−6.5
−6.4
155.7
−0.3
−0.2
192.5
−1.5
−0.8
intensity 5
Predicted
98.2
−3.8
−3.7
156.8
0.8
0.5
194.6
0.6
0.3
intensity 6
Conditions
Illuminance 100 lx
Illuminance 200 lx
Illuminance 1000 lx
for 1 hr.
for 1 hr.
for 1 hr.
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
Measured
218
243
283
intensity
Predicted
210.7
−7.3
−3.3
232.4
−10.6
−4.4
285
2.0
0.7
intensity 1
Predicted
212.1
−5.9
−2.7
234.5
−8.5
−3.5
286.4
3.4
1.2
intensity 2
Predicted
212.6
−5.4
−2.5
235.9
−7.1
−2.9
285.5
2.5
0.9
intensity 3
Predicted
214.9
−3.1
−1.4
237.7
−5.3
−2.2
287.1
4.1
1.4
intensity 4
Predicted
214
−4.0
−1.8
240.4
−2.6
−1.1
285.5
2.5
0.9
intensity 5
Predicted
217
−1.0
−0.5
240.7
−2.3
−0.9
288.1
5.1
1.8
intensity 6
Deviation [mcd/m2]: Deviation between predicted intensity and measured intensity after 20 min. from light interception
Proportion[%]: Proportion of predicted intensity to measured intensity after 20 min. from light interception
Measured intensity: Afterglow intensity actually measured after 20 min. from light interception
Predicted intensity 1: Predicted intensity calculated based on data measured from 2 to 3 min.
Predicted intensity 2: Predicted intensity calculated based on data measured from 2 to 3.5 min.
Predicted intensity 3: Predicted intensity calculated based on data measured from 2 to 4 min.
Predicted intensity 4: Predicted intensity calculated based on data measured from 2 to 5 min.
Predicted intensity 5: Predicted intensity calculated based on data measured from 3 to 4 min.
Predicted intensity 6: Predicted intensity calculated based on data measured from 3 to 5 min.
The Predicted intensity was calculated using data measured for every 30 sec.
1. Afterglow intensity test for light-energy storing type pilot sign: illuminance 200 lx for 20 min.
2. Illuminance in underground passage: 200 lx and more (under an ordinance of Tokyo Fire Defense Agency)
TABLE 6
Influence of sampling time of measured data to be used to predicted intensity after 20 min.
from light interception, calculated using the reciprocal of measured intensity
Case: Resin sample A-1
Sampling time
Every 30 sec.
Every 15 sec.
Every 10 sec.
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
Measured intensity
243
243
243
Predicted intensity 1
232.4
−10.6
−4.4
233
−10.0
−4.1
232
−11.0
−4.5
Predicted intensity 2
235.9
−7.1
−2.9
235.9
−7.1
−2.9
235.7
−7.3
−3.0
Predicted intensity 3
237.7
−5.3
−2.2
237.7
−5.3
−2.2
237.7
−5.3
−2.2
Predicted intensity 4
240.4
−2.6
−1.1
240.4
−2.6
−1.1
239.4
−3.6
−1.5
Predicted intensity 5
240.7
−2.3
−0.9
240.4
−2.6
−1.1
240
−3.0
−1.2
Sampling time
Every 5 sec.
Every 1 sec.
Intensity
Deviation
Proportion
Intensity
Deviation
Proportion
[mcd/m2]
[mcd/m2]
[%]
[mcd/m2]
[mcd/m2]
[%]
Measured intensity
243
243
Predicted intensity 1
232.1
−10.9
−4.5
232.2
−10.8
−4.4
Predicted intensity 2
235.8
−7.2
−3.0
235.7
−7.3
−3.0
Predicted intensity 3
237.9
−5.1
−2.1
237.5
−5.5
−2.3
Predicted intensity 4
240.3
−2.7
−1.1
238.8
−4.2
−1.7
Predicted intensity 5
240.6
−2.4
−1.0
239.6
−3.4
−1.4
Deviation [mcd/m2]: Deviation between predicted intensity and measured intensity after 20 min. from light interception
Proportion[%]: Proportion of predicted intensity to measured intensity after 20 min. from light interception
Measured intensity: Afterglow intensity actually measured after 20 min. from light interception
Predicted intensity 1: Predicted intensity calculated based on data measured from 2 to 3 min.
Predicted intensity 2: Predicted intensity calculated based on data measured from 2 to 4 min.
Predicted intensity 3: Predicted intensity calcualted based on data measured from 2 to 5 min.
Predicted intensity 4: Predicted intensity calculated based on data measured from 3 to 4 min.
Predicted intensity 5: Predicted intensity calcualted based on data measured from 3 to 5 min.
Light-energy storing condition: illuminance 200 lx for 1 hr.
Table 6 represents the calculation result of the afterglow intensity for the sample A-1 at different storing conditions of light energy, which is calculated based on the reciprocal of the afterglow intensity during the specific period until the predetermined time has lapsed from the light interception, in the same way as table 5. In the embodiment, the sampling intervals are 30 seconds, 15 seconds, 10 seconds, 5 seconds, and 1 second. It is obvious that the sampling interval does not affect the accuracy of the measurement.
The storing light sign shown in
When the afterglow intensity of the light storing sign 103 is measured by the stored light intensity measurement device 101, the user supports the stored light intensity measurement device 101 by holding the grip 105, and presses the light measurement unit 102 against the light storing section 109 of the light storing sign 103. The light measurement unit 102 is brought into intimate contact with the light storing section 109, so that it is possible to shield a light measuring area from outside obstructive light, and this makes it possible to measure the afterglow of the light measuring area. Since the stored light intensity measurement device 101 is provided with the shaft 104 and the universal joint 107, even if the light storing sign 103 is disposed on the above-mentioned place, the user can perform the measurement without undue stress. Accordingly, the user can fix the light measurement unit 102 at ease for the time necessary to measure the afterglow intensity of the light storing sign 103. The display unit 106 is disposed on the grip 105, so that it easy for the user to recognize the afterglow intensity of the light storing sign 103.
The light intercepting part 201 and the light receiving part 202 are placed on the contacting surface of the light measurement unit 102. In
The light receiving part 202 is provided with an opening hole 303, and a guard window 304 is slightly deep inside the opening hole 303. And there is a light receiving element 305 at a bottom of the opening hole 303. The light receiving element 305 can use a photoelectric conversion element like a photodiode, and generates electric signals according to the incident light through the guard window 304. The output of the light receiving element 305 is given to a substrate 306. The substrate 306 generates digital data according to the analog electric signals from the light receiving element 305, and outputs the data to a signal line 307. The signal line 307 is installed in the universal joint 107 and the shaft 104, and connected to a signal processing unit in the grip. The digital data of the measurement result is transferred from the substrate 306 to the signal processing unit through the signal line 307.
The output of the substrate 306 is connected to the signal processing unit 403. The signal processing unit 403 can use a special-purpose circuit or a general-purpose circuit. In this embodiment, the general-purpose circuit is used to the signal processing unit 403. The signal processing unit 403 is provided with a bus 404. The bus 404 is connected to an interface circuit 405 for the substrate 306. The signal processing unit 403 receives the digital data from the substrate 306 through the interface circuit 405. The bus 404 is connected to RAM 406, ROM 407, and CPU 408 as well as the interface circuit 405. RAM 406 can store the digital data received from the substrate 306. ROM 407 stores programs and setting data for the signal processing and the control. CPU 408 performs the calculation for the signal processing and the control according to instructions of the program. CPU 408 calculates the afterglow intensity of the light storing sign when a predetermined time lapsed after the measurement start, based on the data read from RAM 406.
The bus 404 is also connected to the interface circuit 409 for the display unit 106. The signal processing unit 403 in this embodiment controls the display unit 106 through the interface circuit 409. The display unit 106 is provided with operation buttons 411 and 412 in addition to an indictor 410 for displaying the measurement result. For instance, the operation button 411 is a menu selecting button, and the operation button 412 is an enter button. A user selects a menu item by the operation button 411, and then ensures the selection by the operation button 412. The menu items are an initialization, a calibration, and an execution of measurement. The calibration is for a case of measuring a reference plate of which afterglow intensity is known. When the user selects the execution of measurement and operates to enter the selection, the signal processing unit 403 fetches the digital data representing the measurement result into RAM 406. The digital data is sequentially stored in RAM 406 for every sampling period. After CPU 408 obtains necessary samples, it calculates the afterglow intensity of the light storing sign according to the sample values.
A first calculation unit 511 finds the straight line (the linear approximate equation) corresponding to reciprocals of the afterglow intensity by means of the data between a first time and a second time after the specific time lapsed from the light interception, out of the sampling data being stored in RAM 406. That is to say, after the constants α and β of the equation (2) are found, the values are stored at a specific location of RAM 406. Then, a second calculation unit 512 calculates the afterglow intensity after the specific time t according to the above equation (2). It is obvious from Table 3 that the first time should be two or three minutes, and it is enough that the second time should be one or two minutes from the first time. In addition, the afterglow intensity to be calculated is the intensity after 20 minutes lapsed from the light interception. A display means 413 is also configured to calculate the afterglow intensity, and then display the calculated result on the indicator 410.
Therefore, the invention can measure the afterglow intensity of the light storing sign in a short time, and it can be used very effectively for the maintenance and investigation of the light storing sign.
Muraoka, Tatusya, Mukai, Hisataka
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